The present disclosure relates to a communication method and system for converging a 5th-Generation (5G) communication system for supporting higher data rates beyond a 4th-Generation (4G) system with a technology for Internet of Things (IoT). The present disclosure may be applied to intelligent services based on the 5G communication technology and the IoT-related technology, such as smart home, smart building, smart city, smart car, connected car, health care, digital education, smart retail, security and safety services.
The present disclosure discloses a method and an apparatus for allocating a ptrs in a next-generation communication system.
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1. A method performed by a terminal in a wireless communication system, the method comprising:
identifying a plurality of resource elements (REs) for a phase tracking reference signal (ptrs);
receiving, from a base station, the ptrs on at least one RE among the plurality of REs; and
performing a phase tracking using the ptrs received on the at least one RE,
wherein an RE on which another reference signal is received among the plurality of REs is not used for the receiving of the ptrs,
wherein the phase tracking is performed without the RE on which the other reference signal is received, and
wherein a phase tracking of at least one adjacent RE is used for a phase tracking of the RE on which the other reference signal is received.
9. A method performed by a base station in a wireless communication system, the method comprising:
identifying a plurality of resource elements (REs) for a phase tracking reference signal (ptrs); and
transmitting, to a terminal, the ptrs on at least one RE among the plurality of REs, wherein the ptrs transmitted on the at least one RE is used to perform a phase tracking,
wherein an RE on which another reference signal is transmitted among the plurality of REs is not used for the transmitting of the ptrs,
wherein the phase tracking is performed, by the terminal, without the RE on which the other reference signal is transmitted, and
wherein a phase tracking of at least one adjacent RE is used for a phase tracking of the RE on which the other reference signal is transmitted.
5. A terminal in a wireless communication system, the terminal comprising:
a transceiver configured to transmit and receive a signal; and
a controller coupled with the transceiver and configured to:
identify a plurality of resource elements (REs) for a phase tracking reference signal (ptrs),
receive, from a base station, the ptrs on at least one RE among the plurality of REs, and
perform a phase tracking using the ptrs received on the at least one RE,
wherein an RE on which another reference signal is received among the plurality of REs is not used for the receiving of the ptrs,
wherein the phase tracking is performed without the RE on which the other reference signal is received, and
wherein a phase tracking of at least one adjacent RE is used for a phase tracking of the RE on which the other reference signal is received.
13. A base station in a wireless communication system, the base station comprising:
a transceiver configured to transmit and receive a signal; and
a controller coupled with the transceiver and configured to:
identify a plurality of resource elements (REs) for a phase tracking reference signal (ptrs), and
transmit, to a terminal, the ptrs on at least one RE among the plurality of REs,
wherein the ptrs transmitted on the at least one RE is used to perform a phase tracking,
wherein an RE on which another reference signal is transmitted among the plurality of REs is not used for the transmitting of the ptrs,
wherein the phase tracking is performed, by the terminal, without the RE on which the other reference signal is transmitted, and
wherein a phase tracking of at least one adjacent RE is used for a phase tracking of the RE on which the other reference signal is transmitted.
2. The method of
3. The method of
4. The method of
6. The terminal of
7. The terminal of
8. The terminal of
10. The method of
11. The method of
12. The method of
14. The base station of
15. The base station of
16. The base station of
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This application is a continuation of application Ser. No. 16/009,586, filed Jun. 15, 2018, which claims priority under 35 U.S.C. § 119 to Korean Patent Application No. 10-2017-0075961 filed on Jun. 15, 2017 and Korean Patent Application No. 10-2017-0101942 filed on Aug. 10, 2017, in the Korean Intellectual Property Office, the disclosures of which is incorporated by reference herein in their entirety.
The present disclosure relates to a wireless communication system, and more particularly, to a method and an apparatus for allocating a PTRS in a next-generation communication system.
To meet the demand for wireless data traffic having increased since deployment of 4G communication systems, efforts have been made to develop an improved 5G or pre-5G communication system. Therefore, the 5G or pre-5G communication system is also called a “beyond 4G network” or a “post LTE system.” The 5G communication system is considered to be implemented in higher frequency (mmWave) bands, e.g., 60 GHz bands, so as to accomplish higher data rates. To decrease propagation loss of the radio waves and increase the transmission distance, the beamforming, massive multiple-input multiple-output (MIMO), full dimensional MIMO (FD-MIMO), array antenna, an analog beam forming, large scale antenna techniques are discussed in 5G communication systems. In addition, in 5G communication systems, development for system network improvement is under way based on advanced small cells, cloud radio access networks (RANs), ultra-dense networks, device-to-device (D2D) communication, wireless backhaul, moving network, cooperative communication, coordinated multi-points (CoMP), reception-end interference cancellation and the like. In the 5G system, hybrid FSK and QAM modulation (FQAM) and sliding window superposition coding (SWSC) as an advanced coding modulation (ACM), and filter bank multi carrier (FBMC), non-orthogonal multiple access (NOMA), and sparse code multiple access (SCMA) as an advanced access technology have been developed.
The internet, which is a human centered connectivity network where humans generate and consume information, is now evolving to the internet of things (IoT) where distributed entities, such as things, exchange and process information without human intervention. The internet of everything (IoE), which is a combination of the IoT technology and the big data processing technology through connection with a cloud server, has emerged. As technology elements, such as “sensing technology,” “wired/wireless communication and network infrastructure,” “service interface technology,” and “Security technology” have been demanded for IoT implementation, a sensor network, a machine-to-machine (M2M) communication, machine type communication (MTC), and so forth have been recently researched. Such an IoT environment may provide intelligent internet technology services that create a new value to human life by collecting and analyzing data generated among connected things. IoT may be applied to a variety of fields including smart home, smart building, smart city, smart car or connected cars, smart grid, health care, smart appliances and advanced medical services through convergence and combination between existing information technology (IT) and various industrial applications.
In line with this, various attempts have been made to apply 5G communication systems to IoT networks. For example, technologies such as a sensor network, machine type communication (MTC), and machine-to-machine (M2M) communication may be implemented by beamforming, MIMO, and array antennas. Application of a cloud radio access network (RAN) as the above-described big data processing technology may also be considered to be as an example of convergence between the 5G technology and the IoT technology.
Recently, with the development of communication systems, researches for schemes for using a phase tracking reference signal (PTRS) in a next-generation communication system have been actively made. Accordingly, there is an increasing demand for a PTRS allocation method.
The present disclosure has been made in order to solve the above problems, and an aspect of the present disclosure is to make communication between adjacent base stations performed smoothly by providing schemes for UE-specifically allocating a PTRS to a scheduled resource block (RB).
In accordance with an aspect of the present disclosure, a method for a terminal includes receiving from a base station a phase tracking reference signal (PTRS) transmitted on a plurality of resource elements (REs); and performing phase tracking using the PTRS, wherein the PTRS is not received on the RE on which another reference signal is received among the plurality of REs.
In accordance with another aspect of the present disclosure, a terminal includes a transceiver configured to transmit/receive signals; and a controller configured to receive from a base station a phase tracking reference signal (PTRS) transmitted on a plurality of resource elements (REs) and to perform phase tracking using the PTRS, wherein the PTRS is not received on the RE on which another reference signal is received among the plurality of REs.
In accordance with still another aspect of the present disclosure, a method for a base station includes transmitting to a terminal a phase tracking reference signal (PTRS) for the terminal to perform phase tracking on a plurality of resource elements (REs), wherein the PTRS is not transmitted on the RE on which another reference signal is transmitted among the plurality of REs.
In accordance with yet still another aspect of the present disclosure, a base station includes a transceiver configured to transmit/receive signals; and a controller configured to transmit to a terminal a phase tracking reference signal (PTRS) for the terminal to perform phase tracking on a plurality of resource elements (REs), wherein the PTRS is not transmitted on the RE on which another reference signal is transmitted among the plurality of REs.
According to the aspects of the present disclosure, by exchanging parameters for PTRS allocation between the serving base station and the adjacent base station in the next-generation communication system, it becomes possible to perform zero power (ZP)-PTRS/data puncturing/rate matching to match various PTRS patterns.
Before undertaking the DETAILED DESCRIPTION below, it may be advantageous to set forth definitions of certain words and phrases used throughout this patent document: the terms “include” and “comprise,” as well as derivatives thereof, mean inclusion without limitation; the term “or,” is inclusive, meaning and/or; the phrases “associated with” and “associated therewith,” as well as derivatives thereof, may mean to include, be included within, interconnect with, contain, be contained within, connect to or with, couple to or with, be communicable with, cooperate with, interleave, juxtapose, be proximate to, be bound to or with, have, have a property of, or the like; and the term “controller” means any device, system or part thereof that controls at least one operation, such a device may be implemented in hardware, firmware or software, or some combination of at least two of the same. It should be noted that the functionality associated with any particular controller may be centralized or distributed, whether locally or remotely.
Moreover, various functions described below can be implemented or supported by one or more computer programs, each of which is formed from computer readable program code and embodied in a computer readable medium. The terms “application” and “program” refer to one or more computer programs, software components, sets of instructions, procedures, functions, objects, classes, instances, related data, or a portion thereof adapted for implementation in a suitable computer readable program code. The phrase “computer readable program code” includes any type of computer code, including source code, object code, and executable code. The phrase “computer readable medium” includes any type of medium capable of being accessed by a computer, such as read only memory (ROM), random access memory (RAM), a hard disk drive, a compact disc (CD), a digital video disc (DVD), or any other type of memory. A “non-transitory” computer readable medium excludes wired, wireless, optical, or other communication links that transport transitory electrical or other signals. A non-transitory computer readable medium includes media where data can be permanently stored and media where data can be stored and later overwritten, such as a rewritable optical disc or an erasable memory device.
Definitions for certain words and phrases are provided throughout this patent document, those of ordinary skill in the art should understand that in many, if not most instances, such definitions apply to prior, as well as future uses of such defined words and phrases.
For a more complete understanding of the present disclosure and its advantages, reference is now made to the following description taken in conjunction with the accompanying drawings, in which like reference numerals represent like parts:
Hereinafter, embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. In describing the present disclosure, related well-known functions or configurations incorporated herein are not described in detail in case where it is determined that they obscure the subject matter of the present disclosure in unnecessary detail. Further, terms to be described later are terms defined in consideration of their functions in the present disclosure, but may differ depending on intentions of a user and an operator or customs. Accordingly, they should be defined based on the contents of the whole description of the present disclosure.
The aspects and features of the present disclosure and methods for achieving the aspects and features will be apparent by referring to the embodiments to be described in detail with reference to the accompanying drawings. However, the present disclosure is not limited to the embodiments disclosed hereinafter, but can be implemented in diverse forms. The matters defined in the description, such as the detailed construction and elements, are nothing but specific details provided to assist those of ordinary skill in the art in a comprehensive understanding of the disclosure, and the present disclosure is only defined within the scope of the appended claims. In the entire description of the present disclosure, the same drawing reference numerals are used for the same elements across various figures.
In an orthogonal frequency-division multiplexing (OFDM)-based wireless communication system, in order to estimate a phase error, a common phase error (CPE) commonly exerting an influence on all OFDM subcarriers is estimated and compensated for using a reference signal in a frequency domain. Further, in a time domain, the phase error is estimated and compensated for in the unit of a symbol using a cyclic prefix to reduce an influence of inter-carrier interference (ICI).
In case of single user equipment (UE) multi-input multi-output (MIMO), a phase tracking reference signal (PTRS) for phase noise compensation is orthogonally allocated for estimation performance between PTRS/PTRS and PTRS/data. In the same manner as a demodulation reference signal (DMRS), the PTRS is UE-specifically allocated.
As described above, in order to maintain the orthogonality between PTRS/PTRS and PTRS/data, it is necessary to exchange allocation information of the PTRS between the TRPs. The allocation information of the PTRS may be notified as information of L_subcarrier, L_sym, and L_RB. Here, L_subcarrier indicates a subcarrier index to which the PTRS is allocated, L_sym indicates a symbol index to which the PTRS is allocated, and L_RB indicates an RB index to which a PTRS subcarrier is allocated. As compared with a method for notifying all PTRS allocation information, a method for analogizing PTRS allocation information based on resource allocation information may be more efficient in view of signaling overhead.
As another method for notifying of the PTRS allocation information, the base station may notify of the PTRS allocation information using the RB to which the PTRS is allocated as bitmap information. For example, if there is 10 RBs and the PTRS is allocated to even-numbered RBs, it can be notified whether the PTRS is allocated to the corresponding RB through a combination of 0 and 1, such as 0101010101. Such bitmap information may be transferred to the terminal through radio resource control (RRC)/medium access control element (MAC CE)/downlink control information (DCI) signaling. In the RB to which the PTRS is allocated, the subcarrier index may be replaced by the PTRS frequency pattern indicated by the number of scheduled RBs.
As another method for notifying of the PTRS allocation information, the base station may predefine the pattern of the RB to which the PTRS is allocated, and may notify the terminal of what pattern is used.
Accordingly, in an embodiment illustrated in
Further, as a mixed method of
Next, as a fallback solution, a ZP-PTRS allocation method in case where PTRS information cannot be exchanged between two base stations, such as a non-ideal backhaul situation, will be described.
Next, a case where collision between PTRS and another RS occurs during allocation of the PTRS will be described. The PTRS may be allocated successively on time-axis as shown in
If the PTRS collides with another RS as shown in
The PTRS moves to an adjacent subcarrier location/adjacent symbol to be allocated.
Since the PTRS is an important training signal for estimating phase tracking, it may move to the adjacent subcarrier location, such as 1115 of
Further, as the PTRS is transmitted in a region in which data is to be transmitted, the base station and the terminal may perform rate matching for data transmission/reception.
As described above, the PTRS shifting information may be shared in advance, and such signaling may be transferred to the terminal through DCI/MAC CE/RRC.
First, the base station of
Then, the terminal of
If the collision between the PTRS and another RS has occurred, as another method, the PTRS may be punctured as shown in
At the RE location in which collision between the PTRS and another RS occurs, the terminal does not perform the phase tracking, but performs the phase tracking using the adjacent symbol.
Then, the terminal of
Referring to
The transceiver 1910 may transmit/receive signals to/from another network entity. The transceiver 1910 may receive, for example, system information from a base station, and may receive a synchronization signal or a reference signal.
The terminal controller 1930 may control the overall operation of the terminal according to an embodiment of the present disclosure. For example, the terminal controller 1930 may control a signal flow between respective blocks to perform operations according to the drawings and flowcharts as described above. Specifically, the terminal controller 1930 may operate in accordance with the control signal from the base station, and may control the transceiver to send/receive a message or a signal to/from the terminal and/or the base station.
The storage 1950 may store at least one of information transmitted/received through the transceiver 1910 and information generated through the terminal controller 1930.
Referring to
The transceiver 2010 may transmit/receive signals to/from another network entity. The transceiver 2010 may transmit, for example, system information to the terminal, and may transmit a synchronization signal or a reference signal.
The base station controller 2030 may control the overall operation of the base station according to an embodiment of the present disclosure. For example, the base station controller 2030 may control operations provided in the present disclosure, such as communication with an adjacent base station and allocation of PTRS to a resource for the terminal.
The storage 2050 may store at least one of information transmitted/received through the transceiver 2010 and information generated through the base station controller 2030.
Although embodiments of the present disclosure have been described in the specification and drawings, these are merely used as general meanings to assist those of ordinary skill in the art to gain a comprehensive understanding of the present disclosure, and do not limit the scope of the present disclosure. Accordingly, it should be analyzed that the scope of the present disclosure includes all changes and modifications derived based on the technical idea of the present disclosure in addition to the embodiments disclosed herein.
Although the present disclosure has been described with various embodiments, various changes and modifications may be suggested to one skilled in the art. It is intended that the present disclosure encompass such changes and modifications as fall within the scope of the appended claims.
Qi, Yinan, Hunukumbure, Mythri, Yoo, Hyunil, Nam, Hyungju
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